EP0477582A1 - Digital frequency multiplication and data serialization circuits - Google Patents
Digital frequency multiplication and data serialization circuits Download PDFInfo
- Publication number
- EP0477582A1 EP0477582A1 EP91114594A EP91114594A EP0477582A1 EP 0477582 A1 EP0477582 A1 EP 0477582A1 EP 91114594 A EP91114594 A EP 91114594A EP 91114594 A EP91114594 A EP 91114594A EP 0477582 A1 EP0477582 A1 EP 0477582A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- input
- clock
- delay
- coupled
- circuit
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
Links
Images
Classifications
-
- H—ELECTRICITY
- H03—ELECTRONIC CIRCUITRY
- H03M—CODING; DECODING; CODE CONVERSION IN GENERAL
- H03M9/00—Parallel/series conversion or vice versa
-
- H—ELECTRICITY
- H03—ELECTRONIC CIRCUITRY
- H03K—PULSE TECHNIQUE
- H03K5/00—Manipulating of pulses not covered by one of the other main groups of this subclass
- H03K5/00006—Changing the frequency
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J3/00—Time-division multiplex systems
- H04J3/02—Details
- H04J3/04—Distributors combined with modulators or demodulators
- H04J3/047—Distributors with transistors or integrated circuits
-
- H—ELECTRICITY
- H03—ELECTRONIC CIRCUITRY
- H03K—PULSE TECHNIQUE
- H03K5/00—Manipulating of pulses not covered by one of the other main groups of this subclass
- H03K2005/00013—Delay, i.e. output pulse is delayed after input pulse and pulse length of output pulse is dependent on pulse length of input pulse
- H03K2005/0015—Layout of the delay element
- H03K2005/00234—Layout of the delay element using circuits having two logic levels
-
- H—ELECTRICITY
- H03—ELECTRONIC CIRCUITRY
- H03K—PULSE TECHNIQUE
- H03K5/00—Manipulating of pulses not covered by one of the other main groups of this subclass
- H03K2005/00013—Delay, i.e. output pulse is delayed after input pulse and pulse length of output pulse is dependent on pulse length of input pulse
- H03K2005/0015—Layout of the delay element
- H03K2005/00234—Layout of the delay element using circuits having two logic levels
- H03K2005/00247—Layout of the delay element using circuits having two logic levels using counters
-
- H—ELECTRICITY
- H03—ELECTRONIC CIRCUITRY
- H03K—PULSE TECHNIQUE
- H03K5/00—Manipulating of pulses not covered by one of the other main groups of this subclass
- H03K2005/00286—Phase shifter, i.e. the delay between the output and input pulse is dependent on the frequency, and such that a phase difference is obtained independent of the frequency
Definitions
- This invention relates in general to communication systems and information and data processing systems, and more particularly, to digital clock frequency multiplication and data serialization techniques for converting a stream of Q parallel data bits into serial data for transmission and/or processing.
- a conventional frequency multiplication and data serialization circuit is depicted in Figure 1.
- Circuit 10 receives the parallel data clock (low frequency clock) on line 11 which is coupled to a PLL circuit 12.
- PLL 12 multiplies the parallel clock frequency and outputs on line 13 a serial data clock (high frequency clock) that is phase synchronized with the parallel data clock.
- the high frequency clock output of PLL 12 is input to a ring counter 14 and the clock "C" input of a data latch 18.
- Ring counter 14 produces Q synchronized pulses CLC(1), CLC(2), ..., CLC(Q), wherein Q equals the number of parallel data bits.
- synchronized pulses are output from counter 14 on respective lines 15 to a data selector 16, which uses the pulses as clocks for the parallel data bits which are input to data selector 16 on lines 17.
- a clock pulse on a line 15 causes a corresponding data bit on a line 17 to be transferred from a parallel data latch in selector 16 to the serial output stream on line 19.
- Line 19 is coupled to the data "D" input of latch 18, which again is clocked by the serial data clock from the PLL 12.
- a phase locked loop typically includes a voltage controlled oscillator, phase detector, charge pump and filter.
- the voltage controlled oscillator's frequency is normally susceptible to noise, which manifests itself as jitter at the PLL output.
- Serial data jitter obviously degrades optical link performance and is therefore undesirable.
- the ring counter and data select circuit of the prior art serializer of Figure 1 consist of a large number of latches which must operate at a high frequency. These components therefore further limit the maximum serial data rate for a particular technology. Also, because of the large number of circuits required, power consumption makes large scale integration difficult.
- the present invention as claimed is designed to address the performance limitations of conventional frequency multiplication and data serialization technology, and thus allow for higher data rate signal processing for a given technology.
- a simultaneous clock frequency multiplication and data serialization circuit for converting Q parallel data bits into a serial data stream is provided pursuant to a first aspect of the present invention.
- the circuit includes clock phase generating means for producing Q synchronous clocks of different phase in response to the parallel data clock signal. Coupled to receive the Q clocks and the Q parallel data bits is logic circuitry which uses each of the Q synchronous clocks to gate a respective one of the Q parallel data bits such that the Q parallel data bits are sequentially output from the logic circuitry as a serial data stream.
- the clock phase generating means comprises a delay line having Q taps, each tap outputting one of the Q synchronous clocks of different phase.
- the logic circuitry includes: detecting means for detecting each of the Q synchronous clocks and outputting a signal pulse in response thereto; a plurality of AND gates, each AND gate being configured to receive at a first input one of the detector signal pulses and at a second input a respective one of the Q parallel data bits; and an OR circuit coupled to receive in parallel the output signals of the plurality of AND gates and combine the AND gate output signals into the serial data stream.
- the present invention comprises a digital frequency multiplication and synchronization circuit for generating a high frequency signal from a low frequency signal.
- the circuit includes clock phase generating means coupled to receive the low frequency signal and output in response thereto Q synchronous clocks each of different phase.
- Q detectors are each coupled to receive one of the Q synchronous clocks and output a signal pulse in response thereto.
- the signal pulses are transmitted in parallel to logic circuitry which combines the pulses into the desired synchronous high frequency signal.
- the present invention provides a novel technique for the simultaneous clock frequency multiplication and data serialization of parallel data.
- the digital techniques described herein accomplish clock frequency multiplication with less jitter than conventional approaches using PLL circuitry.
- the present data serialization circuits do not require latches, and are therefore simpler to implement than existing approaches, and can serialize data at a higher rate with less power consumption than conventional techniques, i.e., assuming the same technology and circuit speed.
- one aspect of the present invention is the provision of a digital clock frequency multiplication and synchronization circuit, generally denoted 30, for converting a low frequency clock, such as a parallel data clock, to a high frequency clock, such as that required for serial data transmission.
- a digital clock frequency multiplication and synchronization circuit for converting a low frequency clock, such as a parallel data clock, to a high frequency clock, such as that required for serial data transmission.
- data serialization is also preferably performed simultaneous with clock frequency multiplication.
- the parallel clock frequency must be multiplied Q times to produce an appropriate high frequency data clock.
- the low frequency parallel data clock 32 is fed to a delay line 34 which generates, through a plurality of circuit delays "D", a family of delay clocks f(0), f(1), f(2)..., f(Q-2), f(Q-1) of different phase.
- the delay clocks which are each output at one of Q respective taps in line 34, are of the same frequency as low frequency clock 32 but different phase, except for f(0).
- an edge detector 36 configured to detect one of the respective rising and falling delay clock edges.
- One embodiment of a rising edge detector is depicted in Figure 3.
- a not B logic has the following truth table: A B AnB 0 0 0 0 0 1 0 1 0 1 1 1 0
- a not B circuit 38 herein after A not B, inverts the B input and then gates the resultant signal in an AND gate with the A input.
- the output is a pulse which occurs on the positive clock transition edge.
- a negative clock transition edge detector is obtained by transposing the connections to the A and B inputs of circuit 38, with the understanding that the B input is to be inverted prior to gating with the A input.
- edge detector 36 is to be implemented as a rising or falling edge detector.
- edge detector 36 outputs a pulse S(0), S(1), S(2)..., S(Q-2), S(Q-1) corresponding to each delay clock sampled.
- the length of each pulse is defined by delay time Y.
- Detector output pulses S(0), S(1), S(2)..., S(Q-2), S(Q-1) are input in parallel to an OR circuit 40 which outputs a pulse should any output of edge detector 36 contain a pulse.
- the desired high frequency clock is available at the output of OR circuit 40.
- a frequency multiplication timing diagram is depicted in Figure 4.
- Delay clocks f(0), f(1), f(2)..., f(Q-2), and f(Q-1) (f(Q) being equivalent to f(0) after the first cycle) are obtained from delay line 34 by detector 36.
- Detector 36 outputs pulses S(0), S(1), S(2)..., S(Q-2) and S(Q-1) in response to the corresponding detected delay clock.
- the output pulses from detector 36 are input in parallel to OR circuit 40 which outputs the desired high frequency clock. Again the high frequency clock output of OR circuit 40 is phase synchronized with the low frequency clock 32 and is Q times the low frequency.
- circuit 30 embodies a return-to-zero type (see below) digital clock frequency multiplication technique. (A nonreturn-to-zero digital clock frequency multiplication approach is described below.)
- the digital frequency multiplication and synchronization technique of Figure 2 is modified to provide data serialization simultaneous with frequency multiplication.
- Two well known formats for data serialization comprise return-to-zero and nonreturn-to-zero data encoding.
- return-to-zero (RZ) format requires that the coded signal return to a central or zero level between bit cells subsequent a data transition.
- the more commonly used format is the nonreturn-to-zero (NRZ) data code wherein no return is made to a central or zero level subsequent a data transition.
- NRZ nonreturn-to-zero
- Figure 5 depicts one preferred embodiment of a simultaneous frequency multiplication and RZ data serialization circuit, generally denoted 50.
- Circuit 50 incorporates several components of frequency multiplication circuit 30 ( Figure 2).
- the low frequency clock input 32, delay line 34, edge detector 36 and OR circuit 40 are identical to the corresponding components described above in connection with the basic frequency multiplication circuit.
- edge detector output pulses S(0), S(1), S(2)..., S(Q-2), S(Q-1) are gated into input AND circuits 52 by respective parallel data bits, Bit(0), Bit(1), Bit(2)..., Bit(Q-2), Bit(Q-1).
- the outputs of AND gates 52 are fed in parallel to OR circuit 40.
- AND circuits 52 and OR circuit 40 function as a multiplexer with the parallel data bits serving as the control inputs of the multiplexer. Multiplexer 40 outputs the converted parallel data bits as a serial return-to-zero data stream.
- FIG 7 depicts a further modification of the frequency multiplication circuit of Figure 2.
- This circuit denoted 58, provides simultaneous frequency multiplication and nonreturn-to-zero data serialization.
- the low frequency clock 32 is initially fed to a delay line 60 which outputs a plurality of delay clocks of different phase f(0), f(1), f(2)..., f(Q-2), f(Q-1).
- the edge detector of the prior circuit embodiments is replaced here with Q A not B circuits 62.
- Delays D in delay line 60 also function as delays between inputs to A not B circuits 62. Circuits 62 and their corresponding delays D between inputs can be considered edge detectors (cf. with Figure 3).
- the output pulses from A not B circuits 62 are equal in length to the phase difference between the delay clocks.
- AnB circuit output pulses G(0), G(1), G(2),..., G(Q-2), G(Q-1) are gated in respective two input AND circuits 64 by the parallel data bits, Bit(0), Bit(1), Bit(2)... Bit(Q-2), Bit (Q-1).
- the resultant output signals from AND gates 64 (which remain level (1) or level (0) for the entire respective bit cell) are input in parallel to OR circuit 40 and output therefrom as a serial nonreturn-to-zero data stream.
- nonreturn-to-zero data serialization and return-to-zero data serialization can be easily intermixed in the same data stream simply by selecting the appropriate circuit scheme ( Figure 5 or Figure 7) for different parallel data bits.
- circuit 50 Figure 5) or circuit 58 ( Figure 7) could be readily modified to accommodate other combinations of encoding techniques.
- means for generating synchronous clocks of multiple phase are combined with appropriate logic circuitry to simultaneously frequency multiply and data serialize the Q parallel data bits.
- nonreturn-to-zero circuitry of Figure 7 can also be modified for clock frequency multiplication.
- AND circuits 64 connecting the outputs of A not B circuits 62 in parallel to the inputs of OR circuit 40, and inputting a 101010... low frequency clock signal, a symmetrical, multiplied clock frequency output is obtained.
Landscapes
- Engineering & Computer Science (AREA)
- Physics & Mathematics (AREA)
- Nonlinear Science (AREA)
- Theoretical Computer Science (AREA)
- Microelectronics & Electronic Packaging (AREA)
- Computer Networks & Wireless Communication (AREA)
- Signal Processing (AREA)
- Synchronisation In Digital Transmission Systems (AREA)
- Time-Division Multiplex Systems (AREA)
Abstract
Description
- This invention relates in general to communication systems and information and data processing systems, and more particularly, to digital clock frequency multiplication and data serialization techniques for converting a stream of Q parallel data bits into serial data for transmission and/or processing.
- In optical fiber transmission systems the trend is to increase the data rate further to exploit the high transmission capacity of single-mode optical fibers. The limiting factor for data rate increases is usually not the optical fiber data carrying capability, but rather electronic circuit performance. In digital communication networks, such as fiber optic transmission systems, parallel data bits must be converted into a serial data stream at the transmitting end for transfer to a remote receiving end. Conversion of parallel data to serial data conventionally requires frequency multiplication of the parallel data clock. This is typically accomplished by a phase locked loop (PLL), which is an analog component well known in the art. Data serialization is normally accomplished via a special circuit called a serializer. The PLL and serializer are considered to be critical components of the data communication network. These circuits traditionally operate at the serial data stream rate and usually limit communication channel data carrying capability.
- A conventional frequency multiplication and data serialization circuit, generally denoted 10, is depicted in Figure 1.
Circuit 10 receives the parallel data clock (low frequency clock) on line 11 which is coupled to aPLL circuit 12.PLL 12 multiplies the parallel clock frequency and outputs on line 13 a serial data clock (high frequency clock) that is phase synchronized with the parallel data clock. The high frequency clock output ofPLL 12 is input to aring counter 14 and the clock "C" input of adata latch 18.Ring counter 14 produces Q synchronized pulses CLC(1), CLC(2), ..., CLC(Q), wherein Q equals the number of parallel data bits. These synchronized pulses are output fromcounter 14 onrespective lines 15 to adata selector 16, which uses the pulses as clocks for the parallel data bits which are input todata selector 16 onlines 17. A clock pulse on aline 15 causes a corresponding data bit on aline 17 to be transferred from a parallel data latch inselector 16 to the serial output stream online 19.Line 19 is coupled to the data "D" input oflatch 18, which again is clocked by the serial data clock from thePLL 12. - A phase locked loop typically includes a voltage controlled oscillator, phase detector, charge pump and filter. The voltage controlled oscillator's frequency is normally susceptible to noise, which manifests itself as jitter at the PLL output. Serial data jitter obviously degrades optical link performance and is therefore undesirable. With conventional technology difficulties are experienced in maintaining PLL jitter low in a noisy system environment. In addition, the ring counter and data select circuit of the prior art serializer of Figure 1 consist of a large number of latches which must operate at a high frequency. These components therefore further limit the maximum serial data rate for a particular technology. Also, because of the large number of circuits required, power consumption makes large scale integration difficult.
- The present invention as claimed is designed to address the performance limitations of conventional frequency multiplication and data serialization technology, and thus allow for higher data rate signal processing for a given technology.
- Briefly described, a simultaneous clock frequency multiplication and data serialization circuit for converting Q parallel data bits into a serial data stream is provided pursuant to a first aspect of the present invention. The circuit includes clock phase generating means for producing Q synchronous clocks of different phase in response to the parallel data clock signal. Coupled to receive the Q clocks and the Q parallel data bits is logic circuitry which uses each of the Q synchronous clocks to gate a respective one of the Q parallel data bits such that the Q parallel data bits are sequentially output from the logic circuitry as a serial data stream.
- In one specific embodiment, the clock phase generating means comprises a delay line having Q taps, each tap outputting one of the Q synchronous clocks of different phase. Further, the logic circuitry includes: detecting means for detecting each of the Q synchronous clocks and outputting a signal pulse in response thereto; a plurality of AND gates, each AND gate being configured to receive at a first input one of the detector signal pulses and at a second input a respective one of the Q parallel data bits; and an OR circuit coupled to receive in parallel the output signals of the plurality of AND gates and combine the AND gate output signals into the serial data stream. Specific circuits for return-to-zero serialization and nonreturn-to-zero serialization are described and claimed.
- In another aspect, the present invention comprises a digital frequency multiplication and synchronization circuit for generating a high frequency signal from a low frequency signal. The circuit includes clock phase generating means coupled to receive the low frequency signal and output in response thereto Q synchronous clocks each of different phase. Q detectors are each coupled to receive one of the Q synchronous clocks and output a signal pulse in response thereto. The signal pulses are transmitted in parallel to logic circuitry which combines the pulses into the desired synchronous high frequency signal.
- In a principal aspect, the present invention provides a novel technique for the simultaneous clock frequency multiplication and data serialization of parallel data. The digital techniques described herein accomplish clock frequency multiplication with less jitter than conventional approaches using PLL circuitry. In addition, the present data serialization circuits do not require latches, and are therefore simpler to implement than existing approaches, and can serialize data at a higher rate with less power consumption than conventional techniques, i.e., assuming the same technology and circuit speed.
- These and other objects, advantages and features of the present invention will be more readily understood from the follow detailed description of certain preferred embodiments of the present invention, when considered in conjunction with the accompanying drawings in which:
- Figure 1
- is a block diagram representation of a prior art frequency multiplication and data serialization circuit;
- Figure 2
- is a block diagram representation of a frequency multiplication and synchronization circuit pursuant to the present invention;
- Figure 3
- is a block diagram representation of one embodiment of an edge detector useful in implementing the circuit of Figure 2;
- Figure 4
- is a timing diagram for the frequency multiplication and synchronization circuit of Figure 2;
- Figure 5
- is a block diagram representation of one embodiment of a combination frequency multiplication and return-to-zero data serialization circuit pursuant to the present invention;
- Figure 6
- is a timing diagram for the return-to-zero data serialization circuit of Figure 5;
- Figure 7
- is a block diagram representation of one embodiment of a combination frequency multiplication and nonreturn-to-zero data serialization circuit pursuant to the present invention; and
- Figure 8
- is a timing diagram for the nonreturn-to-zero data serialization circuit of Figure 7.
- Referring to Figure 2, one aspect of the present invention is the provision of a digital clock frequency multiplication and synchronization circuit, generally denoted 30, for converting a low frequency clock, such as a parallel data clock, to a high frequency clock, such as that required for serial data transmission. (As summarized above, pursuant to the present invention data serialization is also preferably performed simultaneous with clock frequency multiplication. For Q parallel data bits to be serialized, the parallel clock frequency must be multiplied Q times to produce an appropriate high frequency data clock.)
- In the embodiment shown, the low frequency
parallel data clock 32 is fed to adelay line 34 which generates, through a plurality of circuit delays "D", a family of delay clocks f(0), f(1), f(2)..., f(Q-2), f(Q-1) of different phase. The delay clocks, which are each output at one of Q respective taps inline 34, are of the same frequency aslow frequency clock 32 but different phase, except for f(0). The total delay T throughdelay line 34, including a Qth delay D shown in phantom withinline 34, equals the low frequency clock period, and the delay D between adjacent delay line taps is defined as:
wherein: - Q =
- low frequency multiplication factor.
- Calibration techniques are known in the art for ensuring that the total delay of
line 34 equals the low frequency clock period. When calibrated, f(Q) is in phase with f(0) and one clock period removed therefrom. - Coupled to each delay line tap is an
edge detector 36 configured to detect one of the respective rising and falling delay clock edges. One embodiment of a rising edge detector is depicted in Figure 3. A delay clock f(m), where m = 0, 1, 2..., Q-2, Q-1, is fed simultaneously to one input, herein referred to as the A input, of an "A not B"circuit 38 and simultaneously to the input of a delay Y. - The output of delay Y is fed to the other input, herein referred to as the B input, of the A not B circuit. "A not B" logic has the following truth table:
A B AnB 0 0 0 0 1 0 1 0 1 1 1 0 - Essentially, "A not B"
circuit 38, herein after A not B, inverts the B input and then gates the resultant signal in an AND gate with the A input. In Figure 3, the output is a pulse which occurs on the positive clock transition edge. A negative clock transition edge detector is obtained by transposing the connections to the A and B inputs ofcircuit 38, with the understanding that the B input is to be inverted prior to gating with the A input. The particular circuit requirements will dictate whetheredge detector 36 is to be implemented as a rising or falling edge detector. Obviously, with the detector embodiment of Figure 3 Q edge detectors are needed, one for each delay clock f(m) (where m = 0, 1, 2,..., Q-2, Q-1) in order to frequency multiply the parallel data clock Q times. - Returning to Figure 2,
edge detector 36 outputs a pulse S(0), S(1), S(2)..., S(Q-2), S(Q-1) corresponding to each delay clock sampled. In the embodiment of Figure 3, the length of each pulse is defined by delay time Y. Detector output pulses S(0), S(1), S(2)..., S(Q-2), S(Q-1) are input in parallel to anOR circuit 40 which outputs a pulse should any output ofedge detector 36 contain a pulse. The desired high frequency clock is available at the output of ORcircuit 40. - A frequency multiplication timing diagram is depicted in Figure 4. Delay clocks f(0), f(1), f(2)..., f(Q-2), and f(Q-1) (f(Q) being equivalent to f(0) after the first cycle) are obtained from
delay line 34 bydetector 36.Detector 36 outputs pulses S(0), S(1), S(2)..., S(Q-2) and S(Q-1) in response to the corresponding detected delay clock. The output pulses fromdetector 36 are input in parallel to ORcircuit 40 which outputs the desired high frequency clock. Again the high frequency clock output of ORcircuit 40 is phase synchronized with thelow frequency clock 32 and is Q times the low frequency. Also, as can be observed from the resultant high frequency clock signal depicted in Figure 4,circuit 30 embodies a return-to-zero type (see below) digital clock frequency multiplication technique. (A nonreturn-to-zero digital clock frequency multiplication approach is described below.) - In another important aspect of the present invention, the digital frequency multiplication and synchronization technique of Figure 2 is modified to provide data serialization simultaneous with frequency multiplication. Two well known formats for data serialization comprise return-to-zero and nonreturn-to-zero data encoding. Briefly described, return-to-zero (RZ) format requires that the coded signal return to a central or zero level between bit cells subsequent a data transition. The more commonly used format is the nonreturn-to-zero (NRZ) data code wherein no return is made to a central or zero level subsequent a data transition. With this encoding technique, the signal remains at a level one for the entire cell containing a one bit and goes to a zero state when there is a zero bit in the cell. Thus, transitions occur only where successive bit cells are in different states. Variations on the nonreturn-to-zero format are described in the open literature, along with other encoding techniques. The present invention described and claimed herein is intended to encompass simultaneous frequency multiplication and data serialization irrespective of the desired serial data format. By way of example, two circuit implementations, one for RZ encoding and the other for NRZ encoding will be described below. Those skilled in the art will recognize from the information provided herein the circuit modifications necessary to implement the concepts of the present invention in association with other encoding techniques.
- Figure 5 depicts one preferred embodiment of a simultaneous frequency multiplication and RZ data serialization circuit, generally denoted 50.
Circuit 50 incorporates several components of frequency multiplication circuit 30 (Figure 2). In particular, the lowfrequency clock input 32,delay line 34,edge detector 36 and ORcircuit 40 are identical to the corresponding components described above in connection with the basic frequency multiplication circuit. As an extension, however, edge detector output pulses S(0), S(1), S(2)..., S(Q-2), S(Q-1) are gated into input ANDcircuits 52 by respective parallel data bits, Bit(0), Bit(1), Bit(2)..., Bit(Q-2), Bit(Q-1). The outputs of ANDgates 52 are fed in parallel to ORcircuit 40. In combination, ANDcircuits 52 and ORcircuit 40 function as a multiplexer with the parallel data bits serving as the control inputs of the multiplexer.Multiplexer 40 outputs the converted parallel data bits as a serial return-to-zero data stream. - Figure 6 depicts a sample timing diagram for the simultaneous frequency multiplication and return-to-zero data serialization of an arbitrary signal (Bit(0) = 1, Bit(1) = 1, ..., Bit(Q-2) = 0, Bit(Q-1) = 1). (With reference to this figure, recognize that a pulse from AND
circuit 52 will be output only if a data bit (1) within the parallel data bits, Bit(0), Bit(1), Bit (2),... Bit(Q-2), Bit(Q-1), is gated with a respective detector pulse S(0), S(1), S(2)..., S(Q-2), S(Q-1). A data bit (0) will obviously not be gated through an AND circuit as a pulse, but rather as a level zero. - Figure 7 depicts a further modification of the frequency multiplication circuit of Figure 2. This circuit, denoted 58, provides simultaneous frequency multiplication and nonreturn-to-zero data serialization. The
low frequency clock 32 is initially fed to a delay line 60 which outputs a plurality of delay clocks of different phase f(0), f(1), f(2)..., f(Q-2), f(Q-1). As shown, the edge detector of the prior circuit embodiments is replaced here with Q A notB circuits 62. Delays D in delay line 60 also function as delays between inputs to A notB circuits 62.Circuits 62 and their corresponding delays D between inputs can be considered edge detectors (cf. with Figure 3). When data is serialized on the rising clock edge, the f(m-1) delay clock is applied to the A input (see prior discussion in connection with Figure 3) and the f(m) delay clock is applied to the B input of each A notB circuit 62, wherein m = 1, 2, ..., Q. If data is to be serialized on the falling clock edge, then the f(m-1) delay clock is applied to the B input and the f(m) clock is applied to the A input of A notB circuit 62. By using delays D of delay line 60 as the delay between inputs A and B, the output pulses from A notB circuits 62 are equal in length to the phase difference between the delay clocks. AnB circuit output pulses G(0), G(1), G(2),..., G(Q-2), G(Q-1) are gated in respective two input ANDcircuits 64 by the parallel data bits, Bit(0), Bit(1), Bit(2)... Bit(Q-2), Bit (Q-1). The resultant output signals from AND gates 64 (which remain level (1) or level (0) for the entire respective bit cell) are input in parallel to ORcircuit 40 and output therefrom as a serial nonreturn-to-zero data stream. - A timing diagram for nonreturn-to-zero data serialization is shown in Figure 8 (again, by way of example, Bit(0) = 1, Bit (1) = 1, ... Bit(Q-2) = 0, Bit(Q-1) = 1). If desired, nonreturn-to-zero data serialization and return-to-zero data serialization can be easily intermixed in the same data stream simply by selecting the appropriate circuit scheme (Figure 5 or Figure 7) for different parallel data bits. Also, those skilled in the art will recognize that circuit 50 (Figure 5) or circuit 58 (Figure 7) could be readily modified to accommodate other combinations of encoding techniques. In all circuit embodiments, however, means for generating synchronous clocks of multiple phase are combined with appropriate logic circuitry to simultaneously frequency multiply and data serialize the Q parallel data bits.
- Lastly, those skilled in the art will recognize that the nonreturn-to-zero circuitry of Figure 7 can also be modified for clock frequency multiplication. In particular, by eliminating AND
circuits 64, connecting the outputs of A notB circuits 62 in parallel to the inputs ofOR circuit 40, and inputting a 101010... low frequency clock signal, a symmetrical, multiplied clock frequency output is obtained. - It will be observed from the above discussion that simultaneous digital clock frequency multiplication and data serialization is accomplished by the present invention. Further, the digital techniques described herein allow clock frequency multiplication with less jitter than conventional approaches since the circuits are less susceptible to noise. In addition, the data serialization circuits presented do not require latches and are therefore simpler to implement than existing approaches, and can serialize data at a higher rate with less power consumption than existing techniques, i.e., assuming the same technology and circuit speed.
Claims (12)
- A clock frequency multiplication and data serialization circuit for converting Q parallel data bits having an associated clock signal of first frequency and period into a serial data stream having a frequency which is a multiple of said first frequency, said circuit comprising:
clock phase generating means (34) coupled to receive the clock signal associated with said Q parallel data bits, said generating means outputting in response thereto Q synchronous clocks each of different phase per clock signal period; and
logic circuitry (36, 40) coupled to receive said Q synchronous clocks and the Q parallel data bits, said logic circuitry using each of said Q synchronous clocks to gate a respective one of said Q parallel data bits such that the Q parallel data bits are sequentially output therefrom as a serial data stream having a frequency which is a multiple of said first frequency. - The frequency multiplication and data serialization circuit of claim 1, wherein said logic circuitry includes:
means (36) for detecting each of said Q synchronous clocks and outputting a signal pulse in response thereto;
a plurality of AND gates (52), each AND gate being coupled to receive at a first input one of said signal pulses and at a second input a respective one of the parallel data bits; and
OR circuit means (40) coupled to receive in parallel the output signals of said plurality of AND gates and combine said AND gate output signals into the serial data stream. - The frequency multiplication and data serialization circuit of claim 2, wherein said clock detecting means includes a plurality of edge detectors (62), each edge detector being coupled to receive one of said Q synchronous clocks output from said clock phase generating means, each edge detector outputting a signal pulse in response to a received clock.
- The frequency multiplication and data serialization circuit of claim 3, wherein said clock detecting means includes Q edge detectors (36), said edge detectors each outputting a signal pulse on the rising edge of a received clock, each detector including a delay and an A not B logic circuit (62) having an A input and a B input, the A input to said A not B logic and an input to said delay each being coupled to receive one of the Q synchronous clocks, the output of said delay being coupled to the B input to said A not B logic, an output pulse from said A not B logic circuit comprising said edge detector signal pulse.
- The frequency multiplication and data serialization circuit of claim 3, wherein said clock detecting means includes Q edge detectors, said edge detectors each outputting a signal pulse on the falling edge of a received clock, each detector including a delay and an A not B logic circuit having an A input and a B input, the B input to said A not B logic and an input to said delay being coupled to receive one of the Q synchronous clocks, the output of said delay being coupled to the A input of said A not B logic, an output pulse from said A not B logic comprising said edge detector signal pulse.
- The frequency multiplication and data serialization circuit of claim 3, wherein said clock detecting means includes Q edge detectors, said edge detectors each outputting a signal pulse on the rising edge of a received clock, each detector including a delay, an invertor and an AND gate, one input to said AND gate and an input to said delay each being coupled to receive one of the Q synchronous clocks, the output of said delay being coupled to the input of said invertor, the invertor output being coupled to a second input to said AND gate, an output from said AND gate comprising said edge detector signal pulse.
- The frequency multiplication and data serialization circuit of claim 3, wherein said clock detecting means includes Q edge detectors, said edge detectors each outputting a signal pulse on the falling edge of a received clock, each detector including a delay, an invertor and an AND gate, the input to said invertor and the input to said delay each being coupled to receive one of the Q synchronous clocks, the output of said invertor being coupled to a first input to said AND gate and the output of said delay being coupled to a second input to said AND gate, an output from said AND gate comprising said edge detector signal pulse.
- The frequency multiplication and data serialization circuit of claim 2, wherein said clock phase generating means comprises a delay line having Q taps, each of said taps outputting one of said Q synchronous clocks of different phase.
- The frequency multiplication and data serialization circuit of claim 8, wherein said detecting means comprises Q separate detecting means, an input to each of said Q detecting means being coupled to one of said delay line taps, and wherein said plurality of AND gates comprise Q AND gates, one input of each of said Q AND gates being coupled to an output of a respective one of said Q detecting means.
- The frequency multiplication and data serialization circuit of claim 8, wherein said circuit produces return-to-zero data serialization and wherein said Q clock detecting means comprise Q edge detectors, said edge detectors each including a delay therein, each edge detector delay being less than the delay between adjacent delay clocks of the delay line.
- The clock frequency multiplication and data serialization circuit of claim 8, wherein said circuit produces nonreturn-to-zero data serialization, and wherein said Q clock detecting means each comprises an A not B (62) logic circuit having an A input and a B input, the A input of said A not B logic being coupled to receive the f(m-1) delayed clock of the delay line and the B input to said A not B logic being coupled to receive the f(m) delayed clock of the delay line, wherein m = 1, 2, 3..., Q-1.
- The frequency multiplication and data serialization circuit of claim 8, wherein said circuit produces a combination return to zero and nonreturn to zero data serialization, and wherein at least one of said Q clock detecting means comprises an edge detector, said edge detector including a delay therein less than a delay between adjacent delay clocks of the delay line, and wherein said Q clock detecting means includes at least one A not B logic circuit having an A input and a B input, the A input of said A not B logic being coupled to receive a first delayed clock of the delay line and the B input to said A not B logic being coupled to receive a second delayed clock of the delay line, said second delayed clock comprising the next subsequent delayed clock from said first delay clock.
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US588254 | 1990-09-26 | ||
US07/588,254 US5107264A (en) | 1990-09-26 | 1990-09-26 | Digital frequency multiplication and data serialization circuits |
Publications (2)
Publication Number | Publication Date |
---|---|
EP0477582A1 true EP0477582A1 (en) | 1992-04-01 |
EP0477582B1 EP0477582B1 (en) | 1997-06-25 |
Family
ID=24353113
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
EP91114594A Expired - Lifetime EP0477582B1 (en) | 1990-09-26 | 1991-08-30 | Digital frequency multiplication and data serialization circuits |
Country Status (4)
Country | Link |
---|---|
US (1) | US5107264A (en) |
EP (1) | EP0477582B1 (en) |
JP (1) | JP2783470B2 (en) |
DE (1) | DE69126650D1 (en) |
Cited By (9)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
FR2693860A1 (en) * | 1992-07-20 | 1994-01-21 | Majos Jacques | Parallel-serial converter. |
EP0717496A1 (en) * | 1994-12-13 | 1996-06-19 | Xerox Corporation | High speed parallel/serial interface |
EP0758171A2 (en) * | 1995-08-09 | 1997-02-12 | Symbios Logic Inc. | Data sampling and recovery |
GB2309872A (en) * | 1996-02-05 | 1997-08-06 | Ibm | Digital display apparatus |
EP0800276A1 (en) * | 1996-04-01 | 1997-10-08 | Kabushiki Kaisha Toshiba | A frequency multiplying circuit having a first stage with greater multiplying ratio than subsequent stages |
EP0800275A1 (en) * | 1996-04-01 | 1997-10-08 | Kabushiki Kaisha Toshiba | A frequency multiplier using a voltage controlled delay circuit |
EP0686920A3 (en) * | 1994-06-06 | 1997-10-29 | Jeong Deog Kyoon | High speed serial link for fully duplexed data communication |
WO1998006180A1 (en) * | 1996-08-02 | 1998-02-12 | Rockwell International Corporation | A clock signal frequency multiplier |
EP1079300A1 (en) * | 1999-08-09 | 2001-02-28 | ATI International SRL | Method and apparatus for serially transmitting graphics data |
Families Citing this family (33)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US5576980A (en) * | 1991-06-28 | 1996-11-19 | Texas Instruments Incorporated | Serializer circuit for loading and shifting out digitized analog signals |
US5638085A (en) * | 1995-01-13 | 1997-06-10 | Micron Display Technology, Inc. | Timing control for a matrixed scanned array |
US5598156A (en) * | 1995-01-13 | 1997-01-28 | Micron Display Technology, Inc. | Serial to parallel conversion with phase locked loop |
US5933035A (en) * | 1996-12-31 | 1999-08-03 | Cirrus Logic, Inc. | Digital clock frequency multiplication circuit and method |
US5946327A (en) * | 1997-09-09 | 1999-08-31 | 3Com Corporation | Method and apparatus for converting between a multi-bit TDM bus and a single-bit TDM bus using digital logic |
DE19822373C2 (en) * | 1998-02-20 | 2001-05-31 | Ind Technology Res Inst Hsinch | Frequency multiplication circuit and method |
US6259295B1 (en) | 1999-06-28 | 2001-07-10 | Agere Systems Guardian Corp. | Variable phase shifting clock generator |
US20010031023A1 (en) * | 1999-10-28 | 2001-10-18 | Kin Mun Lye | Method and apparatus for generating pulses from phase shift keying analog waveforms |
US6486819B2 (en) | 1999-10-28 | 2002-11-26 | The National University Of Singapore | Circuitry with resistive input impedance for generating pulses from analog waveforms |
US6452530B2 (en) | 1999-10-28 | 2002-09-17 | The National University Of Singapore | Method and apparatus for a pulse decoding communication system using multiple receivers |
WO2001031784A1 (en) | 1999-10-28 | 2001-05-03 | The National University Of Singapore | Method and apparatus for generating pulses from analog waveforms |
US6498578B2 (en) | 1999-10-28 | 2002-12-24 | The National University Of Singapore | Method and apparatus for generating pulses using dynamic transfer function characteristics |
US6630897B2 (en) | 1999-10-28 | 2003-10-07 | Cellonics Incorporated Pte Ltd | Method and apparatus for signal detection in ultra wide-band communications |
US6456216B2 (en) | 1999-10-28 | 2002-09-24 | The National University Of Singapore | Method and apparatus for generating pulses from analog waveforms |
JP4412788B2 (en) * | 2000-01-24 | 2010-02-10 | 株式会社ルネサステクノロジ | Parallel-serial conversion circuit |
US6633203B1 (en) | 2000-04-25 | 2003-10-14 | The National University Of Singapore | Method and apparatus for a gated oscillator in digital circuits |
TW496035B (en) | 2000-04-25 | 2002-07-21 | Univ Singapore | Method and apparatus for a digital clock multiplication circuit |
WO2002013385A1 (en) * | 2000-08-04 | 2002-02-14 | The National University Of Singapore | Method and apparatus for a digital clock multiplication circuit |
US6907090B2 (en) * | 2001-03-13 | 2005-06-14 | The National University Of Singapore | Method and apparatus to recover data from pulses |
US6476744B1 (en) | 2001-04-13 | 2002-11-05 | The National University Of Singapore | Method and apparatus for generating pulses from analog waveforms |
US6498572B1 (en) | 2001-06-18 | 2002-12-24 | The National University Of Singapore | Method and apparatus for delta modulator and sigma delta modulator |
US20020196865A1 (en) * | 2001-06-25 | 2002-12-26 | The National University Of Singapore | Cycle-by-cycle synchronous waveform shaping circuits based on time-domain superpostion and convolution |
US20040232954A1 (en) * | 2001-07-06 | 2004-11-25 | Van Zeijl Paulus Thomas | Signal generator device, method for generating a signal and devices including such a signal generator device |
TW531984B (en) | 2001-10-02 | 2003-05-11 | Univ Singapore | Method and apparatus for ultra wide-band communication system using multiple detectors |
US7054360B2 (en) * | 2001-11-05 | 2006-05-30 | Cellonics Incorporated Pte, Ltd. | Method and apparatus for generating pulse width modulated waveforms |
US20030103583A1 (en) * | 2001-12-04 | 2003-06-05 | National University Of Singapore | Method and apparatus for multi-level phase shift keying communications |
US20030112862A1 (en) * | 2001-12-13 | 2003-06-19 | The National University Of Singapore | Method and apparatus to generate ON-OFF keying signals suitable for communications |
US6724269B2 (en) | 2002-06-21 | 2004-04-20 | Cellonics Incorporated Pte., Ltd. | PSK transmitter and correlator receiver for UWB communications system |
US7015838B1 (en) * | 2003-09-11 | 2006-03-21 | Xilinx, Inc. | Programmable serializing data path |
US7239254B1 (en) * | 2006-03-31 | 2007-07-03 | Intel Corporation | Programmable multi-cycle signaling in integrated circuits |
DE102006019486A1 (en) * | 2006-04-26 | 2007-10-31 | Rohde & Schwarz Gmbh & Co. Kg | Asynchronous signal magnitudes conversion device for use in e.g. spectrum analyzer, has detectors generating respective enabling signals, where synchronous signal with highest data rate results from enabling signals |
US7468685B1 (en) * | 2007-08-20 | 2008-12-23 | Fairchild Semiconductor Corporation | Clockless serialization using delay circuits |
CN113949477B (en) * | 2021-12-21 | 2022-03-04 | 成都金诺信高科技有限公司 | Synchronization method of clock signals with different frequencies |
Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
DE1815308A1 (en) * | 1968-12-18 | 1970-06-25 | Messerschmitt Boelkow Blohm | Circuit arrangement for converting a digital signal in parallel form into a pulse train |
US4379222A (en) * | 1980-08-21 | 1983-04-05 | Ncr Corporation | High speed shift register |
EP0346896A2 (en) * | 1988-06-16 | 1989-12-20 | Fujitsu Limited | A parallel-to-serial converter |
Family Cites Families (10)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPS5354935A (en) * | 1976-10-29 | 1978-05-18 | Mitsubishi Electric Corp | Information converting device |
US4377806A (en) * | 1981-05-13 | 1983-03-22 | International Business Machines Corporation | Parallel to serial converter |
JPS60204121A (en) * | 1984-03-29 | 1985-10-15 | Fujitsu Ltd | phase locked circuit |
US4634987A (en) * | 1984-10-01 | 1987-01-06 | Sundstrand Data Control, Inc. | Frequency multiplier |
US4675612A (en) * | 1985-06-21 | 1987-06-23 | Advanced Micro Devices, Inc. | Apparatus for synchronization of a first signal with a second signal |
JPS62253212A (en) * | 1986-04-18 | 1987-11-05 | Fujitsu Ltd | Frequency multiplier circuit |
JPS63128818A (en) * | 1986-11-18 | 1988-06-01 | Fujitsu Ltd | multiple conversion circuit |
EP0273687B1 (en) * | 1986-12-27 | 1994-03-23 | Sony Corporation | Digital code conversion apparatus |
JPS63261919A (en) * | 1987-04-20 | 1988-10-28 | Sanyo Electric Co Ltd | Edge detection circuit |
US4901076A (en) * | 1987-10-29 | 1990-02-13 | International Business Machines Corporation | Circuit for converting between serial and parallel data streams by high speed addressing |
-
1990
- 1990-09-26 US US07/588,254 patent/US5107264A/en not_active Expired - Fee Related
-
1991
- 1991-05-17 JP JP3140646A patent/JP2783470B2/en not_active Expired - Lifetime
- 1991-08-30 DE DE69126650T patent/DE69126650D1/en not_active Expired - Lifetime
- 1991-08-30 EP EP91114594A patent/EP0477582B1/en not_active Expired - Lifetime
Patent Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
DE1815308A1 (en) * | 1968-12-18 | 1970-06-25 | Messerschmitt Boelkow Blohm | Circuit arrangement for converting a digital signal in parallel form into a pulse train |
US4379222A (en) * | 1980-08-21 | 1983-04-05 | Ncr Corporation | High speed shift register |
EP0346896A2 (en) * | 1988-06-16 | 1989-12-20 | Fujitsu Limited | A parallel-to-serial converter |
Cited By (16)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
EP0580234A1 (en) * | 1992-07-20 | 1994-01-26 | France Telecom | Parallel-serial converter |
FR2693860A1 (en) * | 1992-07-20 | 1994-01-21 | Majos Jacques | Parallel-serial converter. |
US6211714B1 (en) | 1994-06-06 | 2001-04-03 | Sun Microsystems, Inc. | System for Distributing Clocks |
EP0686920A3 (en) * | 1994-06-06 | 1997-10-29 | Jeong Deog Kyoon | High speed serial link for fully duplexed data communication |
EP0717496A1 (en) * | 1994-12-13 | 1996-06-19 | Xerox Corporation | High speed parallel/serial interface |
EP0758171A3 (en) * | 1995-08-09 | 1997-11-26 | Symbios Logic Inc. | Data sampling and recovery |
EP0758171A2 (en) * | 1995-08-09 | 1997-02-12 | Symbios Logic Inc. | Data sampling and recovery |
US6041090A (en) * | 1995-08-09 | 2000-03-21 | Lsi Logic Corporation | Data sampling and recover in a phase-locked loop (PLL) |
GB2309872A (en) * | 1996-02-05 | 1997-08-06 | Ibm | Digital display apparatus |
US5955902A (en) * | 1996-04-01 | 1999-09-21 | Kabushiki Kaisha Toshiba | Frequency multiplier using a voltage controlled delay circuit |
US6005420A (en) * | 1996-04-01 | 1999-12-21 | Kabushiki Kaisha Toshiba | Frequency multiplying circuit having a greater multiplying ratio |
EP0800275A1 (en) * | 1996-04-01 | 1997-10-08 | Kabushiki Kaisha Toshiba | A frequency multiplier using a voltage controlled delay circuit |
EP0800276A1 (en) * | 1996-04-01 | 1997-10-08 | Kabushiki Kaisha Toshiba | A frequency multiplying circuit having a first stage with greater multiplying ratio than subsequent stages |
WO1998006180A1 (en) * | 1996-08-02 | 1998-02-12 | Rockwell International Corporation | A clock signal frequency multiplier |
US5821785A (en) * | 1996-08-02 | 1998-10-13 | Rockwell Int'l Corp. | Clock signal frequency multiplier |
EP1079300A1 (en) * | 1999-08-09 | 2001-02-28 | ATI International SRL | Method and apparatus for serially transmitting graphics data |
Also Published As
Publication number | Publication date |
---|---|
JP2783470B2 (en) | 1998-08-06 |
US5107264A (en) | 1992-04-21 |
DE69126650D1 (en) | 1997-07-31 |
JPH04227122A (en) | 1992-08-17 |
EP0477582B1 (en) | 1997-06-25 |
Similar Documents
Publication | Publication Date | Title |
---|---|---|
EP0477582A1 (en) | Digital frequency multiplication and data serialization circuits | |
EP0686920B1 (en) | High speed serial link for fully duplexed data communication | |
US4965884A (en) | Data alignment method and apparatus | |
CN100483946C (en) | Digital phaselocked loop circuit and method | |
US5359630A (en) | Method and apparatus for realignment of synchronous data | |
US5644604A (en) | Digital phase selector system and method | |
US6593863B2 (en) | Serializer | |
KR920003831B1 (en) | Method and apparatus for stabilized data transmission | |
EP0828204A1 (en) | High resolution clock circuit | |
US6448825B1 (en) | Synchronizing to an input signal | |
EP0463380A1 (en) | Digital data regeneration and deserialization circuits | |
GB2359706A (en) | Synchronising data and clock signals using a programmable delay circuit | |
EP0468669A1 (en) | Apparatus for sequential optical systems | |
US5592519A (en) | Dual frequency clock recovery using common multitap line | |
US5003308A (en) | Serial data receiver with phase shift detection | |
Gotoh et al. | A 2B parallel 1.25 Gb/s interconnect I/O interface with self-configurable link and plesiochronous clocking | |
US5844908A (en) | Digital delay system and method for digital cross connect telecommunication systems | |
EP0582311B1 (en) | Parallel-serial data converter | |
KR100863369B1 (en) | Receivers for cycle encoded signals | |
US5781587A (en) | Clock extraction circuit | |
US4975594A (en) | Frequency detector circuit | |
US6049571A (en) | Encoding circuit with a function of zero continuous-suppression in a data transmission system | |
Park et al. | A 1.0 Gbps CMOS oversampling data recovery circuit with fine delay generation method | |
Kang et al. | A monolithic 625 Mb/s data recovery circuit in 1.2/spl mu/m CMOS | |
KR960006466B1 (en) | Data Retiming Circuit of Transmission System |
Legal Events
Date | Code | Title | Description |
---|---|---|---|
PUAI | Public reference made under article 153(3) epc to a published international application that has entered the european phase |
Free format text: ORIGINAL CODE: 0009012 |
|
AK | Designated contracting states |
Kind code of ref document: A1 Designated state(s): DE FR GB |
|
17P | Request for examination filed |
Effective date: 19920817 |
|
17Q | First examination report despatched |
Effective date: 19950210 |
|
GRAG | Despatch of communication of intention to grant |
Free format text: ORIGINAL CODE: EPIDOS AGRA |
|
GRAH | Despatch of communication of intention to grant a patent |
Free format text: ORIGINAL CODE: EPIDOS IGRA |
|
GRAH | Despatch of communication of intention to grant a patent |
Free format text: ORIGINAL CODE: EPIDOS IGRA |
|
GRAA | (expected) grant |
Free format text: ORIGINAL CODE: 0009210 |
|
AK | Designated contracting states |
Kind code of ref document: B1 Designated state(s): DE FR GB |
|
PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: FR Effective date: 19970625 |
|
REF | Corresponds to: |
Ref document number: 69126650 Country of ref document: DE Date of ref document: 19970731 |
|
PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: DE Effective date: 19970926 |
|
EN | Fr: translation not filed | ||
PLBE | No opposition filed within time limit |
Free format text: ORIGINAL CODE: 0009261 |
|
STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: NO OPPOSITION FILED WITHIN TIME LIMIT |
|
26N | No opposition filed | ||
PGFP | Annual fee paid to national office [announced via postgrant information from national office to epo] |
Ref country code: GB Payment date: 19980722 Year of fee payment: 8 |
|
PG25 | Lapsed in a contracting state [announced via postgrant information from national office to epo] |
Ref country code: GB Free format text: LAPSE BECAUSE OF NON-PAYMENT OF DUE FEES Effective date: 19990830 |
|
GBPC | Gb: european patent ceased through non-payment of renewal fee |
Effective date: 19990830 |